Truss type photovoltaic structure multi-beam transporting vehicle series connection collaborative transportation tool
By using multiple beam transport vehicles connected in series to coordinate the transport of truss-type photovoltaic structures, and by using limiting and sliding mechanisms to control the fixing mechanism, the problem of poor transport stability was solved, and stable transport and convenient unloading of photovoltaic structures were achieved.
Patent Information
- Application Number
- CN202520707179.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-04-15
AI Technical Summary
In the existing technology, beam transport vehicles have poor stability when transporting photovoltaic structures, are prone to damage, and are inconvenient to unload.
A truss-type photovoltaic structure is used, with multiple beam transport vehicles connected in series for coordinated transportation. The movement of the fixed mechanism is controlled by limiting and sliding mechanisms to clamp the photovoltaic structure to ensure transportation stability and facilitate unloading after it is in place.
This improved the stability and ease of unloading of photovoltaic structures by transporting them using beam transport vehicles, prevented damage to the photovoltaic structures during transportation, and enhanced the safety and efficiency of the transportation process.
Smart Images

Figure CN223919201U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to photovoltaic structure transportation technical field especially relates to a truss type photovoltaic structure multi -beam -transporting vehicle series coordination transportation frock. BACKGROUND
[0002] A clean, low-carbon, safe and efficient energy system is constructed, energy supply is improved, non-fossil energy is developed, centralized and distributed development is adhered to, the scale of wind power and photovoltaic power generation is greatly improved, and the development prospect of offshore photovoltaic new energy is broad.
[0003] For photovoltaic structure construction, land and marine photovoltaic structure assembly construction is adopted to form a single photovoltaic structure unit, then the beam transporting vehicle is used to transport the single photovoltaic structure unit to the wharf, and finally the single photovoltaic structure unit is hoisted to the sea to complete the construction of the photovoltaic structure. UTILITY MODEL CONTENTS
[0004] The utility model discloses a truss type photovoltaic structure multi -beam -transporting vehicle series coordination transportation frock, and photovoltaic structure is limited in the limiting mechanism after loading on the beam transporting vehicle, moves the fixed mechanism through the sliding mechanism control, makes the fixed mechanism clamping photovoltaic structure, fixes photovoltaic structure to guarantee the stability when the beam transporting vehicle transports photovoltaic structure, and when transporting in place, the fixed mechanism is moved away from the fixed photovoltaic structure through the sliding mechanism control, thereby facilitating the unloading of photovoltaic structure.
[0005] In order to solve the above technical problems, the utility model adopts the following technical scheme:
[0006] A truss type photovoltaic structure multi -beam -transporting vehicle series coordination transportation frock, including beam transporting vehicle and support beam, support beam is installed on the beam transporting vehicle, it is characterized by: still including fixed module, fixed module is used to fix photovoltaic structure, and fixed module includes support mechanism, sliding mechanism, fixed mechanism and limiting mechanism, support mechanism is installed on the beam transporting vehicle, sliding mechanism sets up on the support mechanism, fixed mechanism is connected with sliding mechanism, and sliding mechanism is used to control the movement of fixed mechanism, and limiting mechanism is installed on the support beam, and limiting mechanism is used to limit photovoltaic structure.
[0007] Photovoltaic structure is limited in the limiting mechanism after loading on the beam transporting vehicle, moves the fixed mechanism through the sliding mechanism control, makes the fixed mechanism clamping photovoltaic structure, fixes photovoltaic structure to guarantee the stability when the beam transporting vehicle transports photovoltaic structure, and when transporting in place, the fixed mechanism is moved away from the fixed photovoltaic structure through the sliding mechanism control, thereby facilitating the unloading of photovoltaic structure.
[0008] Further, the limiting mechanism comprises a limiting column fixedly installed on the support beam, and the limiting column is a hollow cylinder, and the photovoltaic structure is limited in the limiting column.
[0009] Further, the side surface of the limiting column is further provided with a reinforcing rib fixed on the support beam and the limiting column, and the reinforcing rib is used for increasing the fixing strength of the limiting column and the support beam.
[0010] Further, the fixing mechanism comprises a fixing ring and a connecting seat, the fixing ring is connected with the connecting seat, the connecting seat is connected with the sliding mechanism, and the fixing ring is used for clamping the photovoltaic structure.
[0011] Further, the fixing ring is semicircular.
[0012] Further, the sliding mechanism comprises a hydraulic device, a connecting beam and a limiting support assembly, the connecting beam is connected with the fixing mechanism, the hydraulic device is connected with the connecting beam, the connecting beam is installed on the limiting support assembly, the limiting support assembly is installed on the support mechanism, and the connecting beam is controlled to move along the limiting support assembly through the hydraulic device.
[0013] Further, the limiting support assembly comprises a support column and a limiting beam, the support column is fixed on the beam transport vehicle, the limiting beam is installed on the support column, the limiting beam is provided with a limiting sliding groove, the connecting beam is provided with a sliding block, the sliding block slides along the limiting sliding groove, and the limiting beam is further provided with a notch, and the connecting beam passes through the notch.
[0014] Further, the support mechanism comprises a support vertical beam and a support horizontal beam, the support vertical beam is installed on the beam transport vehicle, the support horizontal beam is installed on the support vertical beam, the support vertical beam is provided with a support seat, and the support seat is used for installing the sliding mechanism.
[0015] Further, the support beam is provided with an ear, the ear is connected with a wind rope, one end of the wind rope is connected with the ear, and the other end of the wind rope is connected with the photovoltaic structure.
[0016] Further, the support beam is further provided with a support rod, and the support rod is used for increasing the support strength of the support beam.
[0017] The utility model discloses the following beneficial effects are obtained by adopting the above technical scheme:
[0018] The utility model discloses a support mechanism is installed on the beam carrying vehicle, and the sliding mechanism is arranged on the support mechanism, and the fixed mechanism is connected with the sliding mechanism, and the sliding mechanism is used for controlling the fixed mechanism to move, and the limiting mechanism is installed on the support beam, and the limiting mechanism is used for limiting the photovoltaic structure, and the photovoltaic structure is limited in the limiting mechanism after being loaded on the beam carrying vehicle, and the fixed mechanism is clamped to the photovoltaic structure through the sliding mechanism control fixed mechanism moves, and the photovoltaic structure is fixed, thereby guaranteeing the stability when the beam carrying vehicle transports the photovoltaic structure, and when transporting to the position, the fixed mechanism is moved and is separated from the photovoltaic structure through the sliding mechanism control fixed mechanism, thereby facilitating the unloading of the photovoltaic structure.
[0019] The utility model discloses a support beam is equipped with the lug and support pole piece, and the lug is connected with the wind rope, and one end of wind rope is connected with the lug, and the other end is connected with the photovoltaic structure, and through the design of support pole piece, the support strength of support beam is increased, and through setting up wind rope between the photovoltaic structure and support beam, the stability when the photovoltaic structure transports is guaranteed, and the photovoltaic structure is prevented from happening too big deformation and buckling failure under the action of wind load in the transportation process of beam carrying vehicle, and the normal use of photovoltaic structure is guaranteed. DRAWINGS
[0020] The utility model makes further explanation from the following combined with the drawing:
[0021] Figure 1 It is the transportation schematic view of a kind of truss photovoltaic structure multiple beam carrying vehicle series cooperative transport tool of the utility model;
[0022] Figure 2 It is the structure schematic view of a kind of truss photovoltaic structure multiple beam carrying vehicle series cooperative transport tool of the utility model;
[0023] Figure 3 It is the structure schematic view of fixed module in the utility model;
[0024] Figure 4 It is the structure schematic view of fixed mechanism movement in fixed module of the utility model;
[0025] Figure 5 It is the structure schematic view of support mechanism, sliding mechanism and fixed mechanism in the utility model;
[0026] Figure 6 It is the utility model Figure 5 It is the structure schematic view of the local enlarged view of place A in the utility model;
[0027] Figure 7 It is the structure schematic view of sliding mechanism and fixed mechanism connection in the utility model.
[0028] In the diagram: 1-Photovoltaic structure; 2-Beam transport vehicle; 3-Support beam; 31-Lifting lug; 32-Guiding rope; 33-Supporting rod; 4-Fixing module; 5-Supporting mechanism; 51-Supporting vertical beam; 52-Supporting horizontal beam; 53-Supporting seat; 6-Sliding mechanism; 61-Connecting beam; 62-Supporting column; 63-Limiting beam; 64-Limiting groove; 65-Sliding block; 66-Groove; 7-Fixing mechanism; 71-Fixing ring; 72-Connecting seat; 8-Limiting mechanism; 81-Limiting column; 82-Reinforcing rib. Detailed Implementation
[0029] like Figures 1 to 7 As shown, this utility model discloses a series-connected collaborative transportation tooling for a truss-type photovoltaic structure using multiple beam transport vehicles. It includes a beam transport vehicle 2, a support beam 3, and a fixing module 4. The support beam 3 is mounted on the beam transport vehicle 2. After the photovoltaic structure 1 is hoisted onto the support beam 3, it is fixed by the fixing module 4. The fixing module 4 includes a support mechanism 5, a sliding mechanism 6, a fixing mechanism 7, and a limiting mechanism 8. The limiting mechanism 8 is mounted on the support beam 3. After the photovoltaic support is hoisted onto the support beam 3, the limiting mechanism 8 secures the photovoltaic support. The limiting and fixing mechanism 7 is connected to the sliding mechanism 6. The sliding mechanism 6 controls the movement of the fixing mechanism 7, thereby clamping and releasing the photovoltaic structure 1. When the fixing mechanism 7 clamps the photovoltaic structure 1, it can fix the photovoltaic structure 1 and ensure the stability of the beam transport vehicle 2 when transporting the photovoltaic structure 1. When the fixing mechanism 7 is detached from the photovoltaic structure 1, it is convenient to unload the photovoltaic structure 1. The support mechanism 5 is installed on the beam transport vehicle 2, and the sliding mechanism 6 is installed on the support mechanism 5. The support mechanism 5 supports the sliding mechanism 6.
[0030] Through the above-described structural design, the photovoltaic structure 1 is loaded onto the beam transport vehicle 2 and then confined in the limiting mechanism 8. The moving fixing mechanism 7 is controlled by the sliding mechanism 6 to clamp the photovoltaic structure 1, thus ensuring the stability of the beam transport vehicle 2 when transporting the photovoltaic structure 1. At the same time, when the transport vehicle is in place, the moving fixing mechanism 7 is controlled by the sliding mechanism 6 to move and disengage from the fixing of the photovoltaic structure 1, thereby facilitating the unloading of the photovoltaic structure 1. This solves the problem of poor stability of the beam transport vehicle 2 during the transport of the photovoltaic structure 1, and also facilitates the unloading of the photovoltaic structure 1 after it is in place.
[0031] like Figure 1 As shown, in this embodiment, the support beam 3 is welded from I-beams and has a square structure. Multiple beam transport vehicles 2 are provided and are respectively set at the four corners and the middle of the support bracket of the square structure. This ensures both transportation efficiency and transportation stability. The design of multiple beam transport vehicles 2 makes it easy for the beam transport vehicles 2 to turn and return under the condition of limited transport channels, thereby improving transportation efficiency and increasing the utilization rate of the beam transport vehicles 2.
[0032] In the embodiment, the photovoltaic structure 1 is hoisted onto the beam transport vehicle 2, and the photovoltaic structure 1 is fixed by the fixing module 4. The fixing module 4 is provided with four groups, which are respectively arranged at four corners of the square support beam 3, so as to ensure the stability of the photovoltaic structure 1 during the fixing and transportation.
[0033] The limiting mechanism 8 comprises a limiting column 81 which is a hollow cylindrical shape. The limiting column 81 is fixedly installed at the corner of the square support beam 3. The side surface of the limiting column 81 is further provided with a reinforcing rib 82 which is fixed on the limiting column 81 and the support beam 3. After the photovoltaic structure 1 is hoisted onto the support beam 3, the photovoltaic structure 1 is limited in the hollow cylindrical limiting column 81, so as to avoid the deviation of the photovoltaic structure 1 during the movement. The reinforcing rib 82 is arranged to increase the fixing strength between the limiting column 81 and the support beam 3.
[0034] The supporting mechanism 5 comprises a supporting vertical beam 51 and a supporting horizontal beam 52. The supporting vertical beam 51 is installed on the beam transport vehicle 2, and the supporting horizontal beam 52 is installed on the supporting vertical beam 51. The supporting vertical beam 51 is provided with a supporting seat 53, and the sliding mechanism 6 is installed on the supporting seat 53.
[0035] In the embodiment, the fixing mechanism 7 and the sliding mechanism 6 are both provided with two groups. Each group of the sliding mechanism 6 is connected with a group of the fixing mechanism 7. The two groups of the sliding mechanism 6 control the movement of the fixing mechanism 7, and the two groups of the fixing mechanism 7 realize the fixing of the photovoltaic structure 1.
[0036] The fixing mechanism 7 comprises a fixing ring 71 and a connecting seat 72. The sliding mechanism 6 comprises a hydraulic device, a connecting beam 61 and a limiting support assembly. The fixing ring 71 is connected with the connecting seat 72. The photovoltaic structure 1 is clamped by the fixing ring 71. The fixing ring 71 is a semicircular shape. Two semicircular fixing rings 71 jointly clamp the photovoltaic structure 1. The connecting seat 72 is fixedly installed on the connecting beam 61. The two ends of the connecting beam 61 are installed on the limiting support assembly. The limiting support assembly comprises a supporting column 62 and a limiting beam 63. The supporting column 62 is fixedly installed on the beam transport vehicle 2. The limiting beam 63 is installed on the supporting column 62 and the supporting seat 53. The supporting column 62 and the supporting seat 53 jointly support. The limiting beam 63 is provided with a limiting sliding groove 64. One end of the limiting sliding groove 64 forms an opening. The end of the connecting beam 61 is provided with a sliding block 65. The sliding block 65 is installed in the limiting sliding groove 64 through the opening. The sliding block 65 slides along the limiting sliding groove 64. The side of the limiting beam 63 close to the connecting beam 61 is further provided with a slot 66. The slot 66 is used for the connecting beam 61 to pass through. The hydraulic device adopts a hydraulic machine (not shown in the figure). The hydraulic machine is installed below the limiting beam 63. The hydraulic machine is connected with the connecting beam 61. The hydraulic machine provides power to drive the connecting beam 61 to move the fixing ring 71.
[0037] According to actual use, a plurality of fixing rings 71 can be arranged on the connecting seat 72, and the plurality of fixing rings 71 are arranged in sequence, so that the fixing effect of the fixing ring 71 on the photovoltaic structure 1 is better.
[0038] The support beam 3 is provided with a lifting lug 31 and a support rod 33, the wind rope 32 is connected to the lifting lug 31, one end of the wind rope 32 is connected to the lifting lug 31, and the other end is connected to the photovoltaic structure 1, the support rod 33 is arranged on the support beam 3 in a cross shape, the support strength of the support beam 3 is increased through the design of the support rod 33, the stability of the photovoltaic structure 1 during transportation is ensured through the wind rope 32 arranged between the photovoltaic structure 1 and the support beam 3, and the photovoltaic structure 1 is prevented from being deformed and buckling under the action of wind load during the transportation process of the beam transport vehicle 2, so that the normal use of the photovoltaic structure 1 is ensured.
[0039] The above is only a specific embodiment of the present application, but the technical features of the present application are not limited to this. Any simple change, equivalent replacement or modification made on the basis of the present application to solve the same technical problem and achieve the same technical effect is included in the protection scope of the present application.
Claims
1. A truss photovoltaic structure multi-truck beam carrier series cooperative transportation tool, comprising a beam carrier and a support beam carrier, the support beam carrier is installed on the beam carrier; characterized in that Further comprising a fixing module, the fixing module is used for fixing the photovoltaic structure, the fixing module comprises a supporting mechanism, a sliding mechanism, a fixing mechanism and a limiting mechanism, the supporting mechanism is installed on the beam carrier, the sliding mechanism is arranged on the supporting mechanism, the fixing mechanism is connected with the sliding mechanism, the sliding mechanism is used for controlling the movement of the fixing mechanism, and the limiting mechanism is installed on the support beam carrier and is used for limiting the photovoltaic structure.
2. The tandem transportation tool of the truss photovoltaic structure according to claim 1, characterized in that: The limiting mechanism comprises a limiting column, the limiting column is fixedly installed on the support beam carrier, and the limiting column is a hollow cylindrical shape, and the photovoltaic structure is limited in the limiting column.
3. The tandem transportation tool of a plurality of beam vehicles for a truss photovoltaic structure according to claim 2, characterized in that: The side surface of the limiting column is further provided with a reinforcing rib, the reinforcing rib is fixed on the support beam carrier and the limiting column, and the reinforcing rib is used for increasing the fixing strength of the limiting column and the support beam carrier.
4. The tandem transportation tool of the truss photovoltaic structure according to claim 1, characterized in that: The fixing mechanism comprises a fixing ring and a connecting seat, the fixing ring is connected with the connecting seat, the connecting seat is connected with the sliding mechanism, and the fixing ring is used for clamping the photovoltaic structure.
5. The tandem transportation tool of a plurality of beam vehicles for a truss photovoltaic structure according to claim 4, characterized in that: The fixing ring is semicircular.
6. The tandem transportation tool of a truss photovoltaic structure according to claim 1, characterized in that: The sliding mechanism comprises a hydraulic device, a connecting beam and a limiting support assembly, the connecting beam is connected with the fixing mechanism, the hydraulic device is connected with the connecting beam, the connecting beam is installed on the limiting support assembly, the limiting support assembly is installed on the supporting mechanism, and the connecting beam moves along the limiting support assembly through the hydraulic device.
7. The tandem transportation tool of a plurality of beam vehicles for a truss photovoltaic structure according to claim 6, characterized in that: The limiting support assembly comprises a supporting column and a limiting beam, the supporting column is fixed on the beam carrier, the limiting beam is installed on the supporting column, the limiting beam is provided with a limiting sliding groove, the connecting beam is provided with a sliding block, the sliding block slides along the limiting sliding groove, and the limiting beam is further provided with a notch, and the notch is used for the connecting beam to pass through.
8. The tandem transportation tool of a truss photovoltaic structure according to claim 1, characterized in that: The supporting mechanism comprises a supporting vertical beam and a supporting horizontal beam, the supporting vertical beam is installed on the beam carrier, the supporting horizontal beam is installed on the supporting vertical beam, the supporting vertical beam is provided with a supporting seat, and the supporting seat is used for installing the sliding mechanism.
9. The tandem transportation tool of a plurality of beam vehicles for a truss photovoltaic structure according to claim 1, characterized in that: The support beam carrier is provided with an ear, the ear is connected with a wind rope, one end of the wind rope is connected with the ear, and the other end is connected with the photovoltaic structure.
10. The tandem transportation tool of the truss photovoltaic structure according to claim 1, characterized in that: The support beam carrier is further provided with a supporting rod, and the supporting rod is used for increasing the supporting strength of the support beam carrier.